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Loiselle, A. E.

Publications and source records attributed to Loiselle, A. E..

3 recordsLinked to original sources

Tendon Cell Deletion of IKKβ/NF-κB Drives Functionally Deficient Tendon Healing and Altered Cell Survival Signaling In Vivo

Acute tendon injuries are characterized by excessive matrix deposition that impedes regeneration and disrupts functional improvements. Inflammation is postulated to drive pathologic scar tissue formation, with nuclear factor kappa B (NF-{kappa}B) signaling emerging as a candidate pathway in this process. However, characterization of the spatial and temporal activation of canonical NF-{kappa}B signaling during tendon healing in vivo, including identification of the cell populations activating NF-{kappa}B, is currently unexplored. Therefore, we aimed to determine which cell populations activate canonical NF-{kappa}B signaling following flexor tendon repair with the goal of delineating cell-specific functions of NF-{kappa}B signaling during scar mediated tendon healing. Immunofluorescence revealed that both tendon cells and myofibroblasts exhibit prolonged activation of canonical NF-{kappa}B signaling into the remodeling phase of healing. Using cre-mediated knockout of the canonical NF-{kappa}B kinase (IKK{beta}), we discovered that suppression of canonical NF-{kappa}B signaling in Scleraxis-lineage cells increased myofibroblast content and scar tissue formation. Interestingly, Scleraxis-lineage specific knockout of IKK{beta} increased the incidence of apoptosis, suggesting that canonical NF-{kappa}B signaling may be mediating cell survival during tendon healing. These findings suggest indispensable roles for canonical NF-{kappa}B signaling during flexor tendon healing. One Sentence SummaryScleraxis-lineage specific knockdown of persistent canonical IKK{beta}/NF-{kappa}B drives scar formation and apoptotic signaling during flexor tendon healing.

molecular biology

Development of a Murine Model of Pyogenic Flexor Tenosynovitis

BackgroundTo demonstrate the plausibility of a murine model of pyogenic flexor tenosynovitis. Methods2L of sterile PBS or bioluminescent Xen29 Staphylococcus aureus was administered to the tendon sheath of 36 male C57BL/6J mice. The infectious course was monitored by bioluminescence (BLI) signal via IVIS imaging and recording of weight change. The infected hind paws were harvested at four time points: 24 hours, 72 hours, 1 week and 2 weeks for histopathology using Alcian Blue hematoxylin staining. Two-way ANOVA with Sidaks multiple comparison test was used for statistical analysis. ResultsThe infected cohort displayed significantly elevated bioluminescent values, reductions in weight, and exhibited swelling of the infected digit throughout the course of infection. By day 7 most infected mice saw a substantial decrease in BLI signal intensity, however two infected mice exhibited persistent BLI intensity through day 14. Histopathology of the infected cohort showed tissue disorganization and the presence of a cellular infiltrate in and around the flexor tendon sheath. ConclusionsA murine model of pyogenic flexor tenosynovitis is possible. Further optimization of the model offers an experimental platform for investigation of the pathophysiology of pyogenic flexor tenosynovitis. Clinical RelevanceThis animal model can be utilized in order to elucidate the basic molecular/cellular mechanisms of pyogenic flexor tenosynovitis while simultaneously evaluating novel therapeutic strategies.

pathology

Scleraxis-Lineage Cell Depletion Improves Tendon Healing

Despite the requirement for Scleraxis-lineage (ScxLin) cells during tendon development, the function of ScxLin cells during adult tendon repair, post-natal growth, and adult homeostasis have not been defined. Therefore, we inducibly depleted ScxLin cells (ScxLinDTR) prior to tendon injury and repair surgery and hypothesized that ScxLinDTR mice would exhibit functionally deficient healing compared to wildtype littermates. Surprisingly, depletion of ScxLin cells resulted in increased biomechanical properties without impairments in gliding function at 28 days post-repair, indicative of regeneration. RNA sequencing of day 28 post-repair tendons highlighted differences in matrix-related genes, cell motility, cytoskeletal organization, and metabolism. We also utilized ScxLinDTR mice to define the effects on post-natal tendon growth and adult tendon homeostasis and discovered that adult ScxLin cell depletion resulted in altered tendon collagen fibril diameter, density, and dispersion. Collectively, these findings enhance our fundamental understanding of tendon cell localization, function, and fate during healing, growth, and homeostasis.

cell biology